Energy dissipation processes in solar wind turbulence
Abstract
Turbulence is a chaotic flow regime filled by irregular flows. The dissipation of turbulence is a fundamental problem in the realm of physics. Theoretically, dissipation cannot be ultimately achieved without collisions, and so how turbulent kinetic energy is dissipated in the nearly collisionless solar wind is a challenging problem. Wave particle interactions and magnetic reconnection are two possible dissipation mechanisms, but which mechanism dominates is still a controversial topic. Here we analyze the dissipation region scaling around a solar wind magnetic reconnection region. We find that the magnetic reconnection region shows a unique multifractal scaling in the dissipation range, while the ambient solar wind turbulence reveals a monofractal dissipation process for most of the time. These results provide the first observational evidences for the intermittent multifractal dissipation region scaling around a magnetic reconnection site, and they also have significant implications for the fundamental energy dissipation process.
Cite
@article{arxiv.1512.03628,
title = {Energy dissipation processes in solar wind turbulence},
author = {Y. Wang and F. S. Wei and X. S. Feng and X. J. Xu and J. Zhang and T. R. Sun and P. B. Zuo},
journal= {arXiv preprint arXiv:1512.03628},
year = {2016}
}
Comments
6 pages, 5 figures, published in Astrophysical Journal Supplement Series